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Biology subjects

Cox, K. D.

Publications and source records attributed to Cox, K. D..

2 recordsLinked to original sources

A quantitative PCR assay for detection of the mycotoxigenic plant pathogen and food spoiling mold Paecilomyces niveus in fruit, food, and soil

The postharvest fruit pathogen Paecilomyces niveus produces ascospores that can survive some pasteurization temperatures, spoil fruit products, and contaminate them with patulin, an FDA-regulated mycotoxin. Preventing P. niveus from entering food systems requires a robust detection method to effectively determine sources of P. niveus spoilage and disease inoculum. We designed a new robust and culture-independent detection method using species-specific primers (PnPATf/r) based on the patK gene, encoding a 6-methylsalicylic acid synthase, in P. niveus, for use in a rapid qPCR assay. Primer specificity was validated using 24 different P. niveus isolates and 16 other important food spoilage and fruit pathogenic fungi. The threshold for detection of qPCR was 18 genome equivalents. To further validate our new detection method, we demonstrate its use in detecting P. niveus in infected fruits, infested soils and ciders, and in fruit arising from apple blossoms sprayed with a P. niveus spore suspension. Results from this study may help fruit producers address spoilage and patulin contamination by this food spoiling fungus. HighlightsO_LINew primers specific to Paecilomyces niveus (PnPATf/r) were developed based on the patK gene C_LIO_LIA qPCR assay to detect P. niveus was validated, and shown to be able to detect quantities of P. niveus DNA as low as 18 genome equivalents C_LIO_LIThe new qPCR assay was used to investigate the ability of P. niveus ascospores to infect strawberry fruits and enter apple fruits through apple blossom infestation C_LI

microbiology↗

Purkinje cardiomyocytes of the ventricular conduction system are highly diploid but not regenerative

Inefficiency of regeneration underlies many of the pathologies associated with heart injury and disease. Ventricular diploid cardiomyocytes (CMs) are a candidate population that may have enhanced proliferative and regenerative properties [1-3], but subpopulations of diploid CMs and their regenerative capacities are not yet known. Here, using the expression marker Cntn2-GFP and the lineage marker Etv1CreERT2, we demonstrate that peripheral ventricular conduction CMs (Purkinje CMs) are disproportionately diploid (35%, vs. 4% of bulk ventricular CMs). However, this lineage had no enhanced competence to support regeneration after adult infarction. Furthermore, the CM-specific kinase Tnni3k, which strongly influences bulk ventricular CM ploidy [3] and is also associated with conduction system defects [4], had no influence on the ploidy or organization of the ventricular conduction system. Unlike the bulk diploid CM population, a significant fraction of conduction CMs remain diploid by avoiding neonatal cell cycle activity, likely contributing to these properties.

developmental biology↗